多主等温β TiNbTaZr和TiNbTaZrMo合金的MAO新涂层

Rafael F.M. dos Santos , Pedro A.B. Kuroda , Gerson S. de Almeida , Willian F. Zambuzzi , Carlos R. Grandini , Conrado R.M. Afonso
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引用次数: 0

摘要

β钛合金由于其高强度、低弹性模量和生物相容性的结合,在生物医学应用中是必不可少的。虽然含有Nb、Zr、Ta和Mo的高熵合金(BioHEAs)具有很高的机械强度,但它们的高弹性模量可能导致骨科应用中的应力屏蔽。为了解决这些限制,人们正在开发具有增强机械和表面性能的β稳定合金,以支持骨整合和细胞粘附。研究了采用微弧氧化(MAO)处理的创新介质(MEA)和高熵(HEA)等量β Ti合金(四元Ti- 25ta - 25nb - 25zr和五元Ti- 20zr - 20ta - 20nb - 20mo),以优化其作为生物材料的性能。MAO过程产生了富含Ca, P和Mg的生物活性涂层,促进骨细胞增殖。x射线衍射(XRD)鉴定了β相结构,发现了非晶或部分结晶涂层,在MEA四元Ti-25Ta-25Nb-25Zr合金中发现了ZrO₂立方相。表面形貌评估显示,多孔和片层形貌随合金成分的变化而变化,从而增加了亲水性和最佳粗糙度。共聚焦显微镜证实,MEA四元Ti-25Ta-25Nb-25Zr的MAO涂层厚度(10.4 μm)超过HEA(高熵合金)四元Ti-20Zr-20Ta-20Nb-20Mo的MAO涂层厚度(4.2 μm)。细胞活力和粘附实验显示了显著的生物相容性,特别是MEA(中熵合金)季系Ti-25Ta-25Nb-25Zr,这得益于其无钼成分。这些结果强调了这些多主体等效bcc(体心立方)β合金在生物医学应用中的潜力,可能增强成骨细胞附着并有效维持细胞活力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New MAO coatings on multiprincipal equimassic β TiNbTaZr and TiNbTaZrMo alloys
β titanium alloys are essential in biomedical applications due to their combination of high strength, low elastic modulus, and biocompatibility. Although high-entropy alloys (BioHEAs) containing Nb, Zr, Ta, and Mo offer high mechanical strength, their elevated elastic modulus can lead to stress shielding in orthopedic applications. To address these limitations, β-stable alloys with enhanced mechanical and surface properties are being developed to support osseointegration and cellular adhesion. The work focuses on innovative medium (MEA) and high entropy (HEA) equimassic β Ti alloys (quaternary Ti-25Ta-25Nb-25Zr and quinary Ti-20Zr-20Ta-20Nb-20Mo in wt.%) treated with micro-arc oxidation (MAO) to optimize their performance as biomaterials. The MAO process generated bioactive coatings enriched with Ca, P, and Mg, promoting bone cell proliferation. X-ray diffraction (XRD) identified β phase structures and revealed amorphous or partially crystalline coatings, with a ZrO₂ cubic phase noted in the MEA quaternary Ti-25Ta-25Nb-25Zr alloy. Surface morphology assessments showed porous and lamellar topographies that varied with alloy composition, resulting in increased hydrophilicity and optimal roughness. Confocal microscopy confirmed that the MAO coating thickness on MEA quaternary Ti-25Ta-25Nb-25Zr (10.4 μm) surpassed that on HEA (high entropy alloy) quinary Ti-20Zr-20Ta-20Nb-20Mo (4.2 μm). Cell viability and adhesion assays indicated significant biocompatibility, particularly for MEA (medium entropy alloy) quaternary Ti-25Ta-25Nb-25Zr, which benefits from a Mo-free composition. These results underscore the potential of these multiprincipal equimassic bcc (body centered cubic) β alloys for biomedical applications, possibly enhancing osteoblast attachment and sustain cell viability effectively.
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来源期刊
Biomedical engineering advances
Biomedical engineering advances Bioengineering, Biomedical Engineering
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